单极静电之外的内在无序蛋白质构象调控技术

Michael Phillips, Murugappan Muthukumar, Kingshuk Ghosh
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摘要

内在无序蛋白质(IDP)的构型和动力学取决于其带电和不带电氨基酸的组成,以及它们在蛋白质序列中的具体位置。一般来说,蛋白质中氨基酸残基的电荷(正电荷或负电荷)并不是一个固定的量。每个可电离基团都可以在完全电离状态(单极)和电离基团与其来自背景电解质溶液的反离子之间形成的离子对(偶极)状态的平衡分布中存在。偶极子的形成(反离子凝聚)取决于蛋白质的构象,而蛋白质的构象又取决于分子上电荷和偶极子的分布。因此,IDP 骨架中可电离基团的有效电荷可能不同于其单独的化学电荷--这种现象被称为电荷调节。考虑到迄今为止一直被忽视的不可避免的偶极相互作用,并使用自洽程序,我们提出了一种电荷调节理论,它是序列、温度和离子强度的函数。该理论在数量上与 Prothymosin-α 的电荷减少和盐依赖构象数据一致,并做出了几个可检验的预测。我们预测,与相反电荷强烈分离的序列相比,相反电荷混合的序列中带电基团的电离程度较低。电荷调节产生的双极相互作用允许具有不同构象和电荷状态的两相自发共存,这取决于电荷模式的敏感性。这些发现突显了依赖序列的电荷调控及其在控制蛋白质构象和功能方面被磷酸化和突变等生物调控因子利用的潜力。
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Beyond monopole electrostatics in regulating conformations of intrinsically disordered proteins
Conformations and dynamics of an intrinsically disordered protein (IDP) depend on its composition of charged and uncharged amino acids, and their specific placement in the protein sequence. In general, the charge (positive or negative) on an amino acid residue in the protein is not a fixed quantity. Each of the ionizable groups can exist in an equilibrated distribution of fully ionized state (monopole) and an ion-pair (dipole) state formed between the ionizing group and its counterion from the background electrolyte solution. The dipole formation (counterion condensation) depends on the protein conformation, which in turn depends on the distribution of charges and dipoles on the molecule. Consequently, effective charges of ionizable groups in the IDP backbone may differ from their chemical charges in isolation — a phenomenon termed charge-regulation. Accounting for the inevitable dipolar interactions, that have so far been ignored, and using a self-consistent procedure, we present a theory of charge-regulation as a function of sequence, temperature and ionic strength. The theory quantitatively agrees with both charge reduction and salt dependent conformation data of Prothymosin-alpha, and makes several testable predictions. We predict charged groups are less ionized in sequences where opposite charges are well mixed compared to sequences where they are strongly segregated. Emergence of dipolar interactions from charge-regulation allows spontaneous coexistence of two phases having different conformations and charge states, sensitively depending on the charge patterning. These findings highlight sequence dependent charge-regulation and its potential exploitation by biological regulators such as phosphorylation and mutations in controlling protein conformation and function.
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